CN102830724B - Control method for horizontal velocity of shearing rolled piece of hot-rolled section steel flying shear - Google Patents

Control method for horizontal velocity of shearing rolled piece of hot-rolled section steel flying shear Download PDF

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CN102830724B
CN102830724B CN201210255373.4A CN201210255373A CN102830724B CN 102830724 B CN102830724 B CN 102830724B CN 201210255373 A CN201210255373 A CN 201210255373A CN 102830724 B CN102830724 B CN 102830724B
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CN102830724A (en
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严国平
许燚
罗新华
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Wisdri Engineering and Research Incorporation Ltd
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Abstract

The invention discloses a kind of control methods of hot-rolled steel section flying shear shearing rolled piece horizontal velocity, this method comprises the following steps that the relevant parameter equation established according to parameter and meet theory of mechanics, using the corner of crank be 0o when as calculating starting point, the horizontal velocity value of the space tracking and crank for obtaining upper scissor blade D point according to equation each angle corresponding cutting edge when rotating a circle, according to the technique requirement of hot-rolled steel section flying shear shearing, cutting edge initial shear angle is obtained , give convergence franchise , and it is iterated judgement, until reaching the iteration convergence condition of above formula, obtain shearing rolled piece horizontal velocity. The present invention gives the determination methods of the flying shear of suitable given system parameter shearing rolled piece process speed maximum value, have good operability and sequencing. It reduces the labor intensity of project planner departing from three-dimensional parameterized software operating environment, has a good application prospect and the practicability of engineer application.

Description

The control method of rolled piece horizontal velocity sheared by a kind of hot-rolled steel section flying shear
Technical field
The present invention, about a kind of control method of hot-rolled steel section flying shear, refers to that the control method of rolled piece horizontal velocity sheared by a kind of hot-rolled steel section flying shear especially.
Background technology
Flying shear is one of equipment important on steel rolling production-line, before being arranged in mm finishing mill unit, during for shaped steel hot rolling, stocking is cut off end to end, cataclasm, and possess fragmentation feature, for further rolling is ready, the quality of its serviceability directly has influence on production efficiency and the incision of product quality of roll line.Along with the development of continuous rolling mill, flying shear obtains to be applied more and more widely.
After the configuration of crank-linkage type shaped steel shearing system and each part design complete, the rate curve of the space tracking of flying shear blade, the rotating speed of crank and cutting edge can be predicted.Relative to the shaped steel rolled piece profile height of certain altitude, initial shear angle corresponding when cutting edge starts to shear can by calculating, and based on initial shear angle, can calculate the horizontal velocity of a now cutting edge relative to the rate curve of cutting edge.Occur that for avoiding rolled piece stifled steel or rolled piece are stretched the accidents such as distortion, hot rolling technology requirement cutting edge horizontal velocity can not differ too large with bar rolling speed.When starting to shear, the horizontal velocity of cutting edge is approximately about 1.03 times (empirical values) of rolled piece horizontal velocity.But, in technologist's design process, often only can estimate speed by shaped steel rolled piece during flying shear according to shaped steel output, emphasize production capacity simply and ignore the actual shear ability matched of existing equipment, there is larger difference between cutting edge horizontal velocity and shaped steel rolled piece travelling speed when flying shear starts to shear during this just causes hot rolling to be produced, had a strong impact on flying shear shear effect and sectional shape quality.
In successive projects transformation process, do not affecting under the existing main equipment of hot-rolled steel section flying shear completes the prerequisite of set function, cutting edge horizontal velocity when starting to shear and shaped steel rolled piece travelling speed are combined closely by the requirement of technique quite necessary, flying shear can be made like this to reach best shear effect.Therefore, using a set of rational control method to complete hot-rolled steel section flying shear, to shear the design of rolled piece horizontal velocity very necessary, and it can solve the uneconomical design of engineering staff in engineering reality well and to slip up the too many waste caused.Meanwhile, also make slip-stick artist add the understanding of hot-rolling flying shears being sheared to technological design, improve the design level of self.
Summary of the invention
In view of this, fundamental purpose of the present invention is the control method providing a kind of cutting edge horizontal velocity shearing rolled piece with the hot-rolled steel section flying shear of product quality of increasing work efficiency.
For achieving the above object, the invention provides the control method that rolled piece horizontal velocity sheared by a kind of hot-rolled steel section flying shear, the method includes following steps:
Step 1, to set up meet the correlation parameter equation of mechanical principle according to parameter, input hot-rolling flying shears structure respectively forms the correlation parameter of parts: length, the included angle of the length of fixed frame OA, the length of connecting rod AB, the length of connecting rod BC, the length of connecting rod CD and crank OC 5and φ 1, wherein O is coordinate origin, and A is that upper tool post is fixedly connected with hinge, and B point is that connecting rod AB is connected hinge with connecting rod BC, and connecting rod BC and connecting rod CD welds together, and C point is the connection hinge of crank OC and connecting rod BC, D point be upper scissor blade a bit, φ 5for the angle between connecting rod BC and connecting rod CD, φ 1for the angle between coordinate system mon and coordinate system xoy;
Step 2: as the starting point calculated when being 0 ° using the corner of crank, according to equation m D = r 2 · cos ( φ ) + r 5 · cos ( φ 3 + φ 5 ) n D = r 2 · sin ( φ ) + r 5 · sin ( φ 3 + φ 5 ) , x D = m D cos ( φ 1 ) - n D sin ( φ 1 ) y D = m D sin ( φ 1 ) + n D cos ( φ 1 ) , Obtain the horizontal velocity value of the cutting edge that each angle is corresponding when the space tracking of upper scissor blade D point and crank rotate a circle, wherein n dfor the n direction coordinate figure of D point in coordinate system mon, m dfor the m direction coordinate figure of D point in coordinate system mon, r 2for the length of crank OC, φ is the corner of crank OC, r 5for connecting rod CD length, φ 3for the angle of connecting rod BC and m axle forward; x dfor the x direction coordinate figure of D point in coordinate system xoy, y dfor the y direction coordinate figure of D point in coordinate system xoy, φ 1for the angle of xoy coordinate system and mon coordinate system;
Step 3, the technological requirement sheared according to hot-rolled steel section flying shear, the minimum level speed V of given shearing rolled piece minwith maximum horizontal speed V max, make V k=(V min+ V max)/2, then obtain cutting edge initial shear angle α 1;
Step 4, given convergence franchise ε 3, and press formula carry out iteration judgement, till the iteration convergence condition reaching above formula, obtain and now shear rolled piece horizontal velocity, wherein V cut_anglefor the x direction speed of D point during initial shear angle in coordinate system xoy;
Step 5, according to the calculating of step 4 convergence result, export the shearing rolled piece horizontal velocity of cutting edge.
Initial shear angle α is obtained in described step 3 1specifically comprise:
(1) given upper and lower cutting edge is running the cutting edge registration s at minimum point place, during length H1, the cutting edge D most significant digit of crank OC and distance H2, the shaped steel rolled piece profile height H of crank and the parameter value such as distance c of cutting edge and shaped steel rolled piece when starting to shear, by formula draw the theoretical value y of D point in y positive dirction p;
(2) calculate when being 0 ° from φ, using the angle step Δ θ soundd out as the step-length of loop iteration, to each element of coordinates matrix of the D point solved in step 2 by formula carry out conversion and obtain iteration convergence judgment matrix, wherein a ε 2be convergence franchise, travel through each element of this iteration convergence judgment matrix successively, if certain element does not meet formula then increase an angle step Δ θ, until meet formula till;
(3) again by formula x d<0 is to meeting formula iteration convergence judgment matrix in this element judge, if do not met, then increase an angle step Δ θ, go round and begin again successively, until formula with formula x d<0 meets simultaneously, can obtain flying shear initial shear angle α 1.
In described step 4, according to interpolate value correlation technique, obtain flying shear initial shear angle α 1time corresponding cutting edge D point horizontal velocity V cut_angle.
In described step 4, if do not reach the condition of convergence, and if 1.03 × V cut_angle<V k, then V is made max=V k, reenter step 3 and carry out iterative computation, until reach the condition of convergence, find the shearing rolled piece horizontal velocity meeting designing requirement; If do not reach the condition of convergence, and if 1.03 × V cut_angle>V k, then V is made min=V k, reenter step 3 and carry out iterative computation, until reach the condition of convergence, find the shearing rolled piece horizontal velocity meeting designing requirement.
Described shearing rolled piece horizontal velocity is no more than 1m/s.
The defining method of rolled piece process speed maximal value sheared by the flying shear that The present invention gives applicable given systematic parameter, has good operability and program voltinism.It has departed from three-dimensional parameterized software operating environment, reduces the labour intensity of project planner, has a good application prospect and the practicality of engineer applied.
Accompanying drawing explanation
Fig. 1 is flying shear upper scissor blade movable machinery schematic diagram in prior art;
Fig. 2 is that the flying shear initial shear angle design in the present invention solves schematic diagram;
Fig. 3 a is the control method implementing procedure figure that rolled piece horizontal velocity sheared by hot-rolled steel section flying shear provided by the invention;
Fig. 3 b is the sub-process figure that initial shear angle in the present invention solves enforcement;
Fig. 4 is the space tracking curve map of D point on upper scissor blade in the present invention.
Embodiment
For ease of having further understanding to method of the present invention and effect, the existing preferred embodiment that develops simultaneously by reference to the accompanying drawings is described in detail as follows.
1. flying shear blade space tracking and the parameter logistics needed for speed calculating are expressed
Flying shear upper scissor blade movable machinery schematic diagram (lower scissor blade is symmetrical about rolling centerline with it), as shown in Figure 1.
It is made up of crank OC, connecting rod AB and connecting rod BCD: wherein connecting rod BCD is welded by connecting rod BC and connecting rod CD, and upper scissor blade is connected as a single entity by sword seat and connecting rod CD.Crank OC is driven by motor and does periodic gyration around its centre of gyration O.It by hinged secondary drivening rod BCD and upper scissor blade along set orbiting motion.One end B of connecting rod BCD is connected together by hinged pair and connecting rod AB, and connecting rod AB does the motion of certain limit around A point.Before starting shearing, the upper scissor blade of flying shear can rest on some positions of specifying, and is certain angle with horizontal direction.Shear flow process when the first base section bar after roughing enters, motor driving crank OC and then the planned course driving upper scissor blade to start along cutting edge is set move.After certain acceleration and uniform motion, flying shear upper scissor blade reaches the level of shear speed (theory thinks that the horizontal velocity of cutting edge is approximately about 1.03 times of rolled piece horizontal velocity and just can meets synchronous shear and require) of design.After shearing completes, due to the loss of energy, the upper scissor blade horizontal velocity of flying shear can decrease, flying shear enters braking procedure, until flying shear upper scissor blade is parked in the position of initial off-position angle of hot, a shearing cycle of flying shear completes, and enters the next shearing cycle, so go round and begin again, carry out start stop mode shearing.
D point is a bit on cutting edge, and its track can be solved by the equation of motion and geometric relationship, specific as follows:
Take OA as the coordinate axis of the coordinate axis of the m positive dirction of coordinate system mon, the x positive dirction being coordinate system xoy with horizontal left direction (as Fig. 1), as shown in Figure 1, set up successively and solve D locus of points relative coordinate system.
If crank OC length is r 2, angular velocity is ω, and its corner is φ, and fixed frame OA length is r 1, connecting rod BC length is r 3, angular velocity is ω 3, be φ with the angle of m axle forward 3, connecting rod AB length is r 4, angular velocity is ω 4, be φ with the angle of m axle forward 4, connecting rod CD length is r 5, the value of ∠ OAB is φ 2.The angle of xoy coordinate system and mon coordinate system is φ 1.
From vector equation: in coordinate system mon, following equation is had to set up:
r 2 cos ( &phi; ) + r 3 cos ( &phi; 4 ) = r 1 - r 4 cos ( &phi; 2 ) r 2 sin ( &phi; ) + r 3 sin ( &phi; 4 ) = r 4 sin ( &phi; 2 ) - - - ( 1 )
System of equations (1) is the nonlinear angle shifted systems of type of flying shear mechanism, given error of calculation ε 1, can φ be obtained by the method for iterative numerical 3and φ 4.Here newton-Simpson's method is adopted to solve.
Formula (1) is carried out a differentiate to time t, can obtain after Row sum-equal matrix of going forward side by side:
- r 3 sin ( &phi; 4 ) &omega; 3 - r 4 sin ( &phi; 2 ) &omega; 4 = r 2 sin ( &phi; ) &omega; r 3 cos ( &phi; 4 ) &omega; 3 - r 4 cos ( &phi; 2 ) &omega; 4 = - r 2 cos ( &phi; ) &omega; - - - ( 2 )
Being organized into matrix, can to obtain angular velocity equation as follows:
- r 3 sin ( &phi; 4 ) - r 4 sin ( &phi; 2 ) r 3 cos ( &phi; 4 ) - r 4 cos ( &phi; 2 ) &omega; 3 &omega; 4 = r 2 sin ( &phi; ) &omega; - r 2 cos ( &phi; ) &omega; - - - ( 3 )
Have the C hinge connecting cutting edge tip:
m C = r 2 cos ( &phi; ) n C = r 2 sin ( &phi; ) - - - ( 4 )
In formula:
N cthe n direction coordinate figure of-C point in coordinate system mon;
M cthe m direction coordinate figure of-C point in coordinate system mon;
Have the D point on cutting edge:
m D = r 2 &CenterDot; cos ( &phi; ) + r 5 &CenterDot; cos ( &phi; 3 + &phi; 5 ) n D = r 2 &CenterDot; sin ( &phi; ) + r 5 &CenterDot; sin ( &phi; 3 + &phi; 5 ) - - - ( 5 )
In formula:
N dthe n direction coordinate figure of-D point in coordinate system mon;
M dthe m direction coordinate figure of-D point in coordinate system mon.
If the speed along m axle of D point is V dm, the speed along n axle is V dn, ask first order derivative to obtain formula (5) to time t respectively:
V Dm V Dn = - r 2 sin ( &phi; ) - r 5 sin ( &phi; 3 + &phi; 5 ) r 2 cos ( &phi; ) r 5 cos ( &phi; 3 + &phi; 5 ) &omega; 2 &omega; 3 - - - ( 6 )
The operation characteristic parameter of D point in coordinate system mon can be obtained in the hope of solution.The kinematic parameter of D point is converted in coordinate system xoy, if the coordinate of D point in xoy is (x d, y d), conversion formula is:
x D = m D cos ( &phi; 1 ) - n D sin ( &phi; 1 ) y D = m D sin ( &phi; 1 ) + n D cos ( &phi; 1 ) - - - ( 7 )
In formula:
X dthe x direction coordinate figure of-D point in coordinate system xoy;
Y dthe y direction coordinate figure of-D point in coordinate system xoy, as shown in Figure 4.
2. the calculating at initial shear angle
Flying shear initial shear angle schematic diagram as shown in Figure 2.When cutting edge starts to shear, the angle of crank OC and y-axis forward is α 1.Crank OC rotates in the counterclockwise direction under the driving of motor.The rotating speed of crank OC reality can be obtained by the conversion relation of angular velocity and rotating speed.
Initial shear angle α 1can try to achieve by the following method:
The trajectory coordinates of D point in xoy coordinate system is tried to achieve according to formula (1), (4), (5) and formula (7).When cutting edge starts to shear, the y coordinate figure of D point can pass through following formula (8) and obtain:
y P = H 1 + H 2 - s 2 - H 2 - c - - - ( 8 )
In formula: y pit is the theoretical value that D point is determined according to technology arrangement in y positive dirction; H1 is the length of crank, i.e. the length of crank OC in Fig. 1; When H2 is D point most significant digit and the distance of crank, i.e. the length of connecting rod CD in Fig. 1; S is cutting edge design registration; H is shaped steel rolled piece profile height; C is the distance of cutting edge and shaped steel rolled piece when starting to shear; E is the section bar also remaining not disconnected section relative height value reaching the relative shear degree of depth, and its value is 1 deduct relative shear depth value.
Using formula (8) as reverse initial shear angle α 1one in the middle of comparison variable, using formula (9) as reverse initial shear angle α 1the condition of convergence of iterative computation.
| y D - y P y P | &le; &epsiv; 2 - - - ( 9 )
In formula: y dthat D point solves the y direction coordinate figure obtained, ε in coordinate system xoy by equation of locus 2it is convergence franchise.
Running orbit due to flying shear blade is an occluded ellipse arc shape, and when the calculating of D point reaches the condition of convergence, the corner corresponding to the crank OC of this condition of convergence has two.Shear technological requirement from hot rolling, when flying shear rotates from initial off-position place, during first time contact-type steel rolling piece surface, the corner of crank OC is initial shear angle.The additional constraint condition at flying shear initial shear angle can be obtained from this condition.As shown in Figure 2, the velocity reversal of setting blank is along from left to right, and flying shear is rotated counterclockwise, then the right being positioned at the true origin O of coordinate system xoy in the displacement in x direction when D point can meet the demands.Namely have:
x D<0 (10)
Given various parameters initially, take crank angle as iteration object, after calculating the track of D point by formula (1), (4), (5) and formula (7), the theoretical coordinate value of the y positive dirction at D point place when starting to shear by formula (8) calculating again, be iteration object again with crank angle, by formula (9) and formula (10) condition of convergence as loop iteration, thus reverse goes out flying shear initial shear angle α 1.
3. calculate judgment criterion
Technological requirement is sheared according to hot rolling, ensure that the speed shearing rolled piece can match with the speed of shearing system cutting edge when initial shear angle, using formula (11) as the judgment criterion calculating convergence in design, when namely shearing speed and the initial shear angle of rolled piece, the relative velocity difference of shearing system cutting edge need meet setting tolerance requirements with the ratio of the speed of shearing rolled piece.Expression formula is:
| 1.03 &times; V cut _ angle - V k V k | &le; &epsiv; 3 - - - ( 11 )
In formula:
V cut_anglethe x direction speed of D point in coordinate system xoy during-initial shear angle;
V k-shear the x direction speed of rolled piece in coordinate system xoy;
ε 3-convergence franchise.
Given one calculates franchise, then uses alternative manner, namely can obtain the speed of the shearing rolled piece that the speed with shearing system cutting edge when initial shear angle matches.
The process control method of rolled piece horizontal velocity sheared by hot-rolled steel section flying shear provided by the invention, and its design is implemented as shown in process flow diagram 3a, specifically comprises the following steps:
Step 1: set up the correlation parameter equation meeting mechanical principle according to parameter.Given hot-rolling flying shears structure respectively forms the correlation parameter of parts: length, the included angle of the length of fixed frame OA, the length of connecting rod AB, the length of connecting rod BC, the length of connecting rod CD and crank OC 5and φ 1, wherein O is coordinate origin, and A is that upper tool post is fixedly connected with hinge, and B point is that connecting rod AB is connected hinge with connecting rod BC, and connecting rod BC and connecting rod CD welds together, and C point is the connection hinge of crank OC and connecting rod BC.D point be upper scissor blade a bit, φ 5for the angle between connecting rod BC and connecting rod CD, φ 1for the angle between coordinate system mon and coordinate system xoy.These concrete input parameters are all obtain after simplifying by mechanical principle schematic diagram Fig. 1 flying shear entity component, have entity specific aim.Then press the calculating parameter listed by table 1, simplify respectively and obtain each length of connecting rod and corresponding angle value in Fig. 1.Set up corresponding coordinate system mon and coordinate system xoy.
Table 1 calculating parameter
Step 2: as the starting point calculated when being 0 ° using the corner of crank, with the step-length of very little angle step (if excessive, possibly cannot meet formula (11) condition of convergence in follow-up solving) as loop iteration, solve according to the solving equation of aforesaid flying shear blade space tracking and speed, obtain space tracking and the horizontal velocity value of upper scissor blade D point, and this result of calculation is preserved.
Step 3: the technological requirement sheared according to hot-rolled steel section flying shear, the minimum level speed V of given shearing rolled piece minwith maximum horizontal speed V max, namely provide the speed interval [V of the shearing rolled piece of technological requirement min, V max] after, make V k=(V min+ V max)/2, then call initial shear angle counting subroutine, calculate initial shear angle α 1.Initial shear angle α 1solution procedure can be described below (as shown in Figure 3 b): given upper and lower cutting edge is running the cutting edge registration s at minimum point place, during length, the cutting edge D most significant digit of crank and distance H2, the shaped steel rolled piece profile height H of crank and the parameter value such as distance c of cutting edge and shaped steel rolled piece when starting to shear, calculate the theoretical value y of D point in y positive dirction by formula (8) p.Calculate when being 0 ° from φ, using the angle step Δ θ soundd out as the step-length of loop iteration, by formula (9), conversion is carried out to each element of coordinates matrix of the D point solved in step 2 and obtains an iteration convergence judgment matrix.Travel through each element of this iteration convergence judgment matrix successively, if certain element does not meet formula (9), then increase an angle step, till meeting formula (9).By formula (10), this element met in the iteration convergence judgment matrix of formula (9) is judged again.If do not met, then increase an angle step, go round and begin again successively, until formula (9) and formula (10) meet simultaneously.Flying shear initial shear angle α can be obtained 1.According to the method for interpolate value, obtain flying shear initial shear angle α 1time corresponding cutting edge D point horizontal velocity V cut_angle.
Step 4: given convergence franchise ε 3, and carry out iteration judgement by formula (11).If calculate the iteration convergence condition reaching formula (11), then exit previous cycle, the shearing rolled piece horizontal velocity meeting designing requirement that record is corresponding.If do not reach the condition of convergence, and if 1.03 × V cut_angle<V k, then V is made max=V k, reenter step 3 and carry out iterative computation, until (11) reach the condition of convergence, find the shearing rolled piece horizontal velocity meeting designing requirement.If do not reach the condition of convergence, and if 1.03 × V cut_angle>V k, then V is made min=V k, reenter step 3 and carry out iterative computation, until (11) reach the condition of convergence, find the shearing rolled piece horizontal velocity meeting designing requirement.Go round and begin again like this, till the iteration convergence condition reaching formula (11), record shearing rolled piece horizontal velocity now.
Step 5: according to the calculating convergence result of formula (11), export and shear rolled piece horizontal velocity.
Root institute table 1 column data, and the solution procedure of foundation step 1-step 5, the shearing rolled piece horizontal velocity that can obtain this flying shear known conditions applicable is advisable to be no more than 1m/s.If exceeded, then motor exceedes rated speed, is unfavorable for the normal work of motor.If in the scope of 1m/s, then when flying shear can be made to start to shear by the rotating speed reducing motor, cutting edge horizontal velocity and shaped steel rolled piece travelling speed match.Therefore, the defining method of rolled piece process speed maximal value sheared by the flying shear that The present invention gives applicable given systematic parameter, has good operability and program voltinism.It has departed from three-dimensional parameterized software operating environment, reduces the labour intensity of project planner, has a good application prospect and the practicality of engineer applied.
Above embodiment is used for illustrative purposes only; but not limitation of the present invention; relevant those skilled in the art; without departing from the spirit and scope of the present invention; the method can also be applied in the associated mechanisms such as cold-rolling flying shear; therefore all equivalent technical schemes, all fall into protection scope of the present invention.

Claims (2)

1. a control method for rolled piece horizontal velocity sheared by hot-rolled steel section flying shear, and it is characterized in that, the method includes following steps:
Step 1, to set up meet the correlation parameter equation of mechanical principle according to parameter, input hot-rolling flying shears structure respectively forms the correlation parameter of parts: length, the included angle of the length of fixed frame OA, the length of connecting rod AB, the length of connecting rod BC, the length of connecting rod CD and crank OC 5and φ 1, wherein O is coordinate origin, and A is that upper tool post is fixedly connected with hinge, and B point is that connecting rod AB is connected hinge with connecting rod BC, and connecting rod BC and connecting rod CD welds together, and C point is the connection hinge of crank OC and connecting rod BC, D point be upper scissor blade a bit, φ 5for the angle between connecting rod BC and connecting rod CD, φ 1for the angle between coordinate system mon and coordinate system xoy;
Step 2: as the starting point calculated when being 0 ° using the corner of crank, according to equation m D = r 2 &CenterDot; cos ( &phi; ) + r 5 &CenterDot; cos ( &phi; 3 + &phi; 5 ) n D = r 2 &CenterDot; sin ( &phi; ) + r 5 &CenterDot; sin ( &phi; 3 + &phi; 5 ) , x D = m D cos ( &phi; 1 ) - n D sin ( &phi; 1 ) y D = m D sin ( &phi; 1 ) + n D cos ( &phi; 1 ) , Obtain the horizontal velocity value of the cutting edge that each angle is corresponding when the space tracking of upper scissor blade D point and crank rotate a circle, wherein n dfor the n direction coordinate figure of D point in coordinate system mon, m dfor the m direction coordinate figure of D point in coordinate system mon, r 2for the length of crank OC, φ is the corner of crank OC, r 5for connecting rod CD length, φ 3for the angle of connecting rod BC and m axle forward; φ 5for the angle between connecting rod BC and connecting rod CD; x dfor the x direction coordinate figure of D point in coordinate system xoy, y dfor the y direction coordinate figure of D point in coordinate system xoy, φ 1for the angle of xoy coordinate system and mon coordinate system;
Step 3, the technological requirement sheared according to hot-rolled steel section flying shear, the minimum level speed V of given shearing rolled piece minwith maximum horizontal speed V max, make V k=(V min+ V max)/2, then obtain cutting edge initial shear angle α 1;
Step 4, given convergence franchise ε 3, and press formula carry out iteration judgement, till the iteration convergence condition reaching above formula, obtain and now shear rolled piece horizontal velocity, wherein V cut_anglefor initial shear angle α 1time the x direction speed of D point in coordinate system xoy, obtain this V according to the method for interpolate value cut_angle;
Step 5, according to the calculating of step 4 convergence result, export the shearing rolled piece horizontal velocity of cutting edge;
Initial shear angle α is obtained in described step 3 1specifically comprise:
(1) given upper and lower cutting edge is running the cutting edge registration s at minimum point place, during length H1, the cutting edge D most significant digit of crank OC and distance H2, the shaped steel rolled piece profile height H of crank and the distance c parameter value of cutting edge and shaped steel rolled piece when starting to shear, by formula draw the theoretical value yP of D point in y positive dirction;
(2) calculate when being 0 ° from φ, using the angle step Δ θ soundd out as the step-length of loop iteration, to each element of coordinates matrix of the D point solved in step 2 by formula carry out conversion and obtain iteration convergence judgment matrix, wherein a ε 2be convergence franchise, travel through each element of this iteration convergence judgment matrix successively, if certain element does not meet formula then increase an angle step Δ θ, until meet formula till;
(3) again by formula x d<0 is to meeting formula iteration convergence judgment matrix in this element judge, if do not met, then increase an angle step Δ θ, go round and begin again successively, until formula with formula x d<0 meets simultaneously, can obtain flying shear initial shear angle α 1;
In described step 4, if do not reach the condition of convergence, and if 1.03 × V cut_angle<V k, then V is made max=V k, reenter step 3 and carry out iterative computation, until reach the condition of convergence, find the shearing rolled piece horizontal velocity meeting designing requirement; If do not reach the condition of convergence, and if 1.03 × V cut_angle>V k, then V is made min=V k, reenter step 3 and carry out iterative computation, until reach the condition of convergence, find the shearing rolled piece horizontal velocity meeting designing requirement.
2. the control method of rolled piece horizontal velocity sheared by hot-rolled steel section flying shear as claimed in claim 1, and it is characterized in that, described shearing rolled piece horizontal velocity is no more than 1m/s.
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Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101221417A (en) * 2007-12-29 2008-07-16 攀枝花新钢钒股份有限公司 Virtual rolling simulation method for hot continuous rolling strip steel
CN101332475A (en) * 2008-07-23 2008-12-31 福建三钢闽光股份有限公司 Automatic control method of head orientation of laying head
CN102023610A (en) * 2010-10-14 2011-04-20 中冶华天南京自动化工程有限公司 Method and device for achieving positioning and shearing control of flying shear by process software
CN102063531A (en) * 2010-12-24 2011-05-18 中冶南方工程技术有限公司 Method for designing section height sequence of structural steel sheared by hot rolling flying shears

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6745656B1 (en) * 1999-04-08 2004-06-08 Morgan Construction Company High speed flying shear

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101221417A (en) * 2007-12-29 2008-07-16 攀枝花新钢钒股份有限公司 Virtual rolling simulation method for hot continuous rolling strip steel
CN101332475A (en) * 2008-07-23 2008-12-31 福建三钢闽光股份有限公司 Automatic control method of head orientation of laying head
CN102023610A (en) * 2010-10-14 2011-04-20 中冶华天南京自动化工程有限公司 Method and device for achieving positioning and shearing control of flying shear by process software
CN102063531A (en) * 2010-12-24 2011-05-18 中冶南方工程技术有限公司 Method for designing section height sequence of structural steel sheared by hot rolling flying shears

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